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Basal adenosine modulates the functional properties of AMPA receptors in mouse hippocampal neurons through the activation of A(1)R A(2A)R and A(3)R

Adenosine is a widespread neuromodulator within the CNS and its extracellular level is increased during hypoxia or intense synaptic activity, modulating pre- and postsynaptic sites. We studied the neuromodulatory action of adenosine on glutamatergic currents in the hippocampus, showing that activati...

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Autores principales: Di Angelantonio, Silvia, Bertollini, Cristina, Piccinin, Sonia, Rosito, Maria, Trettel, Flavia, Pagani, Francesca, Limatola, Cristina, Ragozzino, Davide
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4601258/
https://www.ncbi.nlm.nih.gov/pubmed/26528137
http://dx.doi.org/10.3389/fncel.2015.00409
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author Di Angelantonio, Silvia
Bertollini, Cristina
Piccinin, Sonia
Rosito, Maria
Trettel, Flavia
Pagani, Francesca
Limatola, Cristina
Ragozzino, Davide
author_facet Di Angelantonio, Silvia
Bertollini, Cristina
Piccinin, Sonia
Rosito, Maria
Trettel, Flavia
Pagani, Francesca
Limatola, Cristina
Ragozzino, Davide
author_sort Di Angelantonio, Silvia
collection PubMed
description Adenosine is a widespread neuromodulator within the CNS and its extracellular level is increased during hypoxia or intense synaptic activity, modulating pre- and postsynaptic sites. We studied the neuromodulatory action of adenosine on glutamatergic currents in the hippocampus, showing that activation of multiple adenosine receptors (ARs) by basal adenosine impacts postsynaptic site. Specifically, the stimulation of both A(1)R and A(3)R reduces AMPA currents, while A(2A)R has an opposite potentiating effect. The effect of ARs stimulation on glutamatergic currents in hippocampal cultures was investigated using pharmacological and genetic approaches. A(3)R inhibition by MRS1523 increased GluR1-Ser845 phosphorylation and potentiated AMPA current amplitude, increasing the apparent affinity for the agonist. A similar effect was observed blocking A(1)R with DPCPX or by genetic deletion of either A(3)R or A(1)R. Conversely, impairment of A(2A)R reduced AMPA currents, and decreased agonist sensitivity. Consistently, in hippocampal slices, ARs activation by AR agonist NECA modulated glutamatergic current amplitude evoked by AMPA application or afferent fiber stimulation. Opposite effects of AR subtypes stimulation are likely associated to changes in GluR1 phosphorylation and represent a novel mechanism of physiological modulation of glutamatergic transmission by adenosine, likely acting in normal conditions in the brain, depending on the level of extracellular adenosine and the distribution of AR subtypes.
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spelling pubmed-46012582015-11-02 Basal adenosine modulates the functional properties of AMPA receptors in mouse hippocampal neurons through the activation of A(1)R A(2A)R and A(3)R Di Angelantonio, Silvia Bertollini, Cristina Piccinin, Sonia Rosito, Maria Trettel, Flavia Pagani, Francesca Limatola, Cristina Ragozzino, Davide Front Cell Neurosci Neuroscience Adenosine is a widespread neuromodulator within the CNS and its extracellular level is increased during hypoxia or intense synaptic activity, modulating pre- and postsynaptic sites. We studied the neuromodulatory action of adenosine on glutamatergic currents in the hippocampus, showing that activation of multiple adenosine receptors (ARs) by basal adenosine impacts postsynaptic site. Specifically, the stimulation of both A(1)R and A(3)R reduces AMPA currents, while A(2A)R has an opposite potentiating effect. The effect of ARs stimulation on glutamatergic currents in hippocampal cultures was investigated using pharmacological and genetic approaches. A(3)R inhibition by MRS1523 increased GluR1-Ser845 phosphorylation and potentiated AMPA current amplitude, increasing the apparent affinity for the agonist. A similar effect was observed blocking A(1)R with DPCPX or by genetic deletion of either A(3)R or A(1)R. Conversely, impairment of A(2A)R reduced AMPA currents, and decreased agonist sensitivity. Consistently, in hippocampal slices, ARs activation by AR agonist NECA modulated glutamatergic current amplitude evoked by AMPA application or afferent fiber stimulation. Opposite effects of AR subtypes stimulation are likely associated to changes in GluR1 phosphorylation and represent a novel mechanism of physiological modulation of glutamatergic transmission by adenosine, likely acting in normal conditions in the brain, depending on the level of extracellular adenosine and the distribution of AR subtypes. Frontiers Media S.A. 2015-10-12 /pmc/articles/PMC4601258/ /pubmed/26528137 http://dx.doi.org/10.3389/fncel.2015.00409 Text en Copyright © 2015 Di Angelantonio, Bertollini, Piccinin, Rosito, Trettel, Pagani, Limatola and Ragozzino. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Neuroscience
Di Angelantonio, Silvia
Bertollini, Cristina
Piccinin, Sonia
Rosito, Maria
Trettel, Flavia
Pagani, Francesca
Limatola, Cristina
Ragozzino, Davide
Basal adenosine modulates the functional properties of AMPA receptors in mouse hippocampal neurons through the activation of A(1)R A(2A)R and A(3)R
title Basal adenosine modulates the functional properties of AMPA receptors in mouse hippocampal neurons through the activation of A(1)R A(2A)R and A(3)R
title_full Basal adenosine modulates the functional properties of AMPA receptors in mouse hippocampal neurons through the activation of A(1)R A(2A)R and A(3)R
title_fullStr Basal adenosine modulates the functional properties of AMPA receptors in mouse hippocampal neurons through the activation of A(1)R A(2A)R and A(3)R
title_full_unstemmed Basal adenosine modulates the functional properties of AMPA receptors in mouse hippocampal neurons through the activation of A(1)R A(2A)R and A(3)R
title_short Basal adenosine modulates the functional properties of AMPA receptors in mouse hippocampal neurons through the activation of A(1)R A(2A)R and A(3)R
title_sort basal adenosine modulates the functional properties of ampa receptors in mouse hippocampal neurons through the activation of a(1)r a(2a)r and a(3)r
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4601258/
https://www.ncbi.nlm.nih.gov/pubmed/26528137
http://dx.doi.org/10.3389/fncel.2015.00409
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